1N6378 [ONSEMI]

1500 Watt Peak Power Mosorb Zener Transient Voltage Suppressors; 1500瓦峰值功率Mosorb齐纳瞬态电压抑制器
1N6378
型号: 1N6378
厂家: ONSEMI    ONSEMI
描述:

1500 Watt Peak Power Mosorb Zener Transient Voltage Suppressors
1500瓦峰值功率Mosorb齐纳瞬态电压抑制器

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1N6373 - 1N6381 Series  
(ICTE-5 - ICTE-36,  
MPTE-5 - MPTE-45)  
1500 Watt Peak Power  
Mosorb Zener Transient  
Voltage Suppressors  
http://onsemi.com  
Unidirectional*  
Cathode  
Anode  
Mosorb devices are designed to protect voltage sensitive  
components from high voltage, high–energy transients. They have  
excellent clamping capability, high surge capability, low zener  
impedance and fast response time. These devices are  
ON Semiconductor’s exclusive, cost-effective, highly reliable  
Surmetic axial leaded package and are ideally-suited for use in  
communication systems, numerical controls, process controls,  
medical equipment, business machines, power supplies and many  
other industrial/consumer applications, to protect CMOS, MOS and  
Bipolar integrated circuits.  
AXIAL LEAD  
CASE 41A  
PLASTIC  
L
MPTE  
–xx  
1N  
63xx  
YYWW  
Specification Features:  
Working Peak Reverse Voltage Range – 5 V to 45 V  
Peak Power – 1500 Watts @ 1 ms  
ESD Rating of Class 3 (>16 KV) per Human Body Model  
Maximum Clamp Voltage @ Peak Pulse Current  
Low Leakage < 5 mA Above 10 V  
L
ICTE  
–xx  
YYWW  
L = Assembly Location  
MPTE–xx = ON Device Code  
ICTE–xx = ON Device Code  
1N63xx = JEDEC Device Code  
YY = Year  
Response Time is Typically < 1 ns  
Mechanical Characteristics:  
CASE: Void-free, transfer-molded, thermosetting plastic  
FINISH: All external surfaces are corrosion resistant and leads are  
readily solderable  
WW = Work Week  
MAXIMUM LEAD TEMPERATURE FOR SOLDERING PURPOSES:  
230°C, 1/16from the case for 10 seconds  
POLARITY: Cathode indicated by polarity band  
MOUNTING POSITION: Any  
ORDERING INFORMATION  
Device  
Package  
Shipping  
500 Units/Box  
MPTE–xx  
Axial Lead  
MAXIMUM RATINGS  
MPTE–xxRL4  
Axial Lead 1500/Tape & Reel  
Rating  
Symbol  
Value  
Unit  
ICTE–xx  
Axial Lead  
500 Units/Box  
Peak Power Dissipation (Note 1.)  
P
PK  
1500  
Watts  
@ T 25°C  
L
ICTE–xxRL4  
Axial Lead 1500/Tape & Reel  
Steady State Power Dissipation  
P
D
5.0  
Watts  
1N63xx  
Axial Lead  
500 Units/Box  
@ T 75°C, Lead Length = 3/8″  
L
Derated above T = 75°C  
20  
20  
mW/°C  
°C/W  
L
1N63xxRL4*  
Axial Lead 1500/Tape & Reel  
Thermal Resistance, Junction–to–Lead  
Forward Surge Current (Note 2.)  
R
I
q
JL  
NOTES:  
200  
Amps  
1. Nonrepetitive current pulse per Figure 5 and der-  
FSM  
ated above T = 25°C per Figure 2.  
@ T = 25°C  
A
A
2. 1/2 sine wave (or equivalent square wave), PW =  
8.3 ms, duty cycle = 4 pulses per minute maxi-  
mum.  
Operating and Storage  
Temperature Range  
T , T  
– 65 to  
+175  
°C  
J
stg  
*Please see 1N6382 – 1N6389 (ICTE–10C – ICTE–36C, MPTE–8C – MPTE–45C)  
for Bidirectional Devices  
*1N6378 Not Available in 1500/Tape & Reel  
Semiconductor Components Industries, LLC, 2002  
1
Publication Order Number:  
June, 2002 – Rev. 2  
1N6373/D  
1N6373 – 1N6381 Series (ICTE–5 – ICTE–36, MPTE–5 – MPTE–45)  
ELECTRICAL CHARACTERISTICS (T = 25°C unless  
I
A
otherwise noted, V = 3.5 V Max. @ I (Note 3.) = 100 A)  
F
F
I
F
Symbol  
Parameter  
I
Maximum Reverse Peak Pulse Current  
Clamping Voltage @ I  
PP  
V
C
PP  
V
C
V
V
V
Working Peak Reverse Voltage  
BR RWM  
RWM  
V
I
V
F
R
T
I
R
Maximum Reverse Leakage Current @ V  
I
RWM  
V
Breakdown Voltage @ I  
Test Current  
BR  
T
I
T
QV  
Maximum Temperature Variation of V  
I
PP  
BR  
BR  
I
F
Forward Current  
V
F
Forward Voltage @ I  
F
Uni–Directional TVS  
ELECTRICAL CHARACTERISTICS (T = 25°C unless otherwise noted, V = 3.5 V Max. @ I (Note 3.) = 100 A)  
A
F
F
Breakdown Voltage  
V
C
@ I (Note 6.)  
V (Volts) (Note 6.)  
C
PP  
V
I @  
R
RWM  
JEDEC  
Device  
)
V
BR  
(Note 5. (Volts)  
@ I  
V
C
I
PP  
(Note 4.)  
V
RWM  
QV  
T
BR  
Device  
@ I  
=
@ I  
=
PP  
PP  
(Volts)  
(mA)  
300  
25  
Min  
Nom  
Max  
(mA)  
1.0  
1.0  
1.0  
1.0  
1.0  
1.0  
1.0  
1.0  
1.0  
(Volts)  
(A)  
160  
100  
90  
(mV/°C)  
4.0  
8.0  
12  
Marking  
1 A  
10 A  
(ON Device)  
1N6373  
(MPTE–5)  
1N6373  
MPTE–5  
5.0  
8.0  
10  
12  
15  
18  
22  
36  
45  
6.0  
9.4  
7.1  
7.5  
1N6374  
(MPTE–8)  
1N6374  
MPTE–8  
9.4  
15  
11.3  
13.7  
16.1  
20.1  
24.2  
29.8  
50.6  
63.3  
11.5  
14.1  
16.5  
20.6  
25.2  
32  
1N6375  
(MPTE–10)  
1N6375  
MPTE–10  
2.0  
2.0  
2.0  
2.0  
2.0  
2.0  
2.0  
11.7  
14.1  
17.6  
21.2  
25.9  
42.4  
52.9  
16.7  
21.2  
25  
1N6376  
(MPTE–12)  
1N6376  
MPTE–12  
70  
14  
1N6377  
(MPTE–15)  
1N6377  
MPTE–15  
60  
18  
1N6378*  
(MPTE–18)  
1N6378*  
MPTE–18  
30  
50  
21  
1N6379  
(MPTE–22)  
1N6379  
MPTE–22  
37.5  
65.2  
78.9  
40  
26  
1N6380  
(MPTE–36)  
1N6380  
MPTE–36  
23  
54.3  
70  
50  
1N6381  
(MPTE–45)  
1N6381  
MPTE–45  
19  
60  
ICTE–5  
ICTE–10  
ICTE–12  
ICTE–5  
ICTE–10  
ICTE–12  
5.0  
10  
12  
300  
2.0  
2.0  
6.0  
11.7  
14.1  
1.0  
1.0  
1.0  
9.4  
16.7  
21.2  
160  
90  
70  
7.1  
13.7  
16.1  
7.5  
14.1  
16.5  
4.0  
8.0  
12  
ICTE–15  
ICTE–18  
ICTE–22  
ICTE–36  
ICTE–15  
ICTE–18  
ICTE–22  
ICTE–36  
15  
18  
22  
36  
2.0  
2.0  
2.0  
2.0  
17.6  
21.2  
25.9  
42.4  
1.0  
1.0  
1.0  
1.0  
25  
30  
37.5  
65.2  
60  
50  
40  
23  
20.1  
24.2  
29.8  
50.6  
20.6  
25.2  
32  
14  
18  
21  
26  
54.3  
NOTES:  
3. Square waveform, PW = 8.3 ms, Non–repetitive duty cycle.  
4. A transient suppressor is normally selected according to the maximum working peak reverse voltage (V  
or greater than the dc or continuous peak operating voltage level.  
), which should be equal to  
RWM  
5. V measured at pulse test current I at an ambient temperature of 25°C and minimum voltage in V is to be controlled.  
BR  
T
BR  
6. Surge current waveform per Figure 5 and derate per Figures 1 and 2.  
*Not Available in the 1500/Tape & Reel  
http://onsemi.com  
2
1N6373 – 1N6381 Series (ICTE–5 – ICTE–36, MPTE–5 – MPTE–45)  
100  
NONREPETITIVE  
PULSE WAVEFORM  
SHOWN IN FIGURE 5  
100  
80  
60  
10  
40  
20  
0
1
0.1Ăms  
ms  
10Ăms  
100Ăms  
1 ms  
10 ms  
0
25  
50  
75  
100 125 150 175 200  
T , AMBIENT TEMPERATURE (°C)  
A
t , PULSE WIDTH  
P
Figure 1. Pulse Rating Curve  
Figure 2. Pulse Derating Curve  
1N6373, ICTE-5, MPTE-5,  
through  
1N6389, ICTE-45, C, MPTE-45, C  
10,000  
1000  
MEASURED @  
ZERO BIAS  
MEASURED @ V  
RWM  
100  
10  
1
10  
100  
1000  
V
BR  
, BREAKDOWN VOLTAGE (VOLTS)  
Figure 3. Capacitance versus Breakdown Voltage  
PULSE WIDTH (t ) IS DEFINED AS  
P
THAT POINT WHERE THE PEAK  
CURRENT DECAYS TO 50% OF I  
t 10 ms  
r
3/8″  
.
PP  
PEAK VALUE - I  
PP  
100  
50  
0
3/8″  
5
4
3
I
PP  
HALF VALUE -  
2
2
t
P
1
0
0
1
2
t, TIME (ms)  
3
4
0
25  
50  
75  
100 125 150 175  
200  
T , LEAD TEMPERATURE (°C)  
L
Figure 4. Steady State Power Derating  
Figure 5. Pulse Waveform  
http://onsemi.com  
3
1N6373 – 1N6381 Series (ICTE–5 – ICTE–36, MPTE–5 – MPTE–45)  
1N6373, ICTE-5, MPTE-5,  
through  
1.5KE6.8CA  
through  
1N6389, ICTE-45, C, MPTE-45, C  
1.5KE200CA  
1000  
500  
1000  
500  
V
Ă=Ă6.8 to 13ĂV  
V
Ă=Ă6.0 to 11.7ĂV  
BR(NOM)  
BR(MIN)  
T Ă=Ă25°C  
P
T Ă=Ă25°C  
L
t Ă=Ă10Ăms  
P
L
t Ă=Ă10Ăms  
19ĂV  
21.2ĂV  
20ĂV  
24ĂV  
43ĂV  
75ĂV  
42.4ĂV  
200  
100  
50  
200  
100  
50  
20  
20  
180ĂV  
120ĂV  
10  
5
10  
5
2
1
2
1
0.3  
0.5 0.7  
1
2
3
5
7
10  
20 30  
(VOLTS)  
0.3  
0.5 0.7  
1
2
3
5
7
10  
20 30  
DV , INSTANTANEOUS INCREASE IN V ABOVE V  
BR  
DV , INSTANTANEOUS INCREASE IN V ABOVE V (VOLTS)  
BR(NOM)  
BR  
BR(NOM)  
BR  
BR  
Figure 6. Dynamic Impedance  
1
0.7  
0.5  
0.3  
0.2  
PULSE WIDTH  
10 ms  
0.1  
0.07  
0.05  
1 ms  
0.03  
0.02  
100 ms  
10 ms  
0.01  
0.1  
0.2  
0.5  
1
2
5
10  
20  
50 100  
D, DUTY CYCLE (%)  
Figure 7. Typical Derating Factor for Duty Cycle  
http://onsemi.com  
4
1N6373 – 1N6381 Series (ICTE–5 – ICTE–36, MPTE–5 – MPTE–45)  
APPLICATION NOTES  
RESPONSE TIME  
circuit layout, minimum lead lengths and placing the  
suppressor device as close as possible to the equipment or  
components to be protected will minimize this overshoot.  
In most applications, the transient suppressor device is  
placed in parallel with the equipment or component to be  
protected. In this situation, there is a time delay associated  
with the capacitance of the device and an overshoot  
condition associated with the inductance of the device and  
the inductance of the connection method. The capacitance  
effect is of minor importance in the parallel protection  
scheme because it only produces a time delay in the  
transition from the operating voltage to the clamp voltage as  
shown in Figure 8.  
The inductive effects in the device are due to actual  
turn-on time (time required for the device to go from zero  
current to full current) and lead inductance. This inductive  
effect produces an overshoot in the voltage across the  
equipment or component being protected as shown in  
Figure 9. Minimizing this overshoot is very important in the  
application, since the main purpose for adding a transient  
suppressor is to clamp voltage spikes. These devices have  
excellent response time, typically in the picosecond range  
and negligible inductance. However, external inductive  
effects could produce unacceptable overshoot. Proper  
Some input impedance represented by Z is essential to  
in  
prevent overstress of the protection device. This impedance  
should be as high as possible, without restricting the circuit  
operation.  
DUTY CYCLE DERATING  
The data of Figure 1 applies for non-repetitive conditions  
and at a lead temperature of 25°C. If the duty cycle increases,  
the peak power must be reduced as indicated by the curves  
of Figure 7. Average power must be derated as the lead or  
ambient temperature rises above 25°C. The average power  
derating curve normally given on data sheets may be  
normalized and used for this purpose.  
At first glance the derating curves of Figure 7 appear to be  
in error as the 10 ms pulse has a higher derating factor than  
the 10 ms pulse. However, when the derating factor for a  
given pulse of Figure 7 is multiplied by the peak power value  
of Figure 1 for the same pulse, the results follow the  
expected trend.  
TYPICAL PROTECTION CIRCUIT  
Z
in  
LOAD  
V
in  
V
L
V (TRANSIENT)  
in  
OVERSHOOT DUE TO  
INDUCTIVE EFFECTS  
V
V
V (TRANSIENT)  
in  
V
L
V
L
V
in  
t
d
t = TIME DELAY DUE TO CAPACITIVE EFFECT  
D
t
t
Figure 8.  
Figure 9.  
http://onsemi.com  
5
1N6373 – 1N6381 Series (ICTE–5 – ICTE–36, MPTE–5 – MPTE–45)  
OUTLINE DIMENSIONS  
Transient Voltage Suppressors – Axial Leaded  
1500 Watt Mosorb  
MOSORB  
CASE 41A–04  
ISSUE D  
B
NOTES:  
1. DIMENSIONING AND TOLERANCING PER ANSI  
Y14.5M, 1982.  
2. CONTROLLING DIMENSION: INCH.  
D
3. LEAD FINISH AND DIAMETER UNCONTROLLED  
IN DIMENSION P.  
4. 041A-01 THRU 041A-03 OBSOLETE, NEW  
STANDARD 041A-04.  
K
INCHES  
DIM MIN MAX  
MILLIMETERS  
P
MIN  
8.50  
4.80  
0.96  
25.40  
---  
MAX  
9.50  
5.30  
1.06  
---  
A
B
D
K
P
0.335  
0.189  
0.038  
1.000  
---  
0.374  
0.209  
0.042  
---  
P
A
0.050  
1.27  
K
http://onsemi.com  
6
1N6373 – 1N6381 Series (ICTE–5 – ICTE–36, MPTE–5 – MPTE–45)  
Notes  
http://onsemi.com  
7
1N6373 – 1N6381 Series (ICTE–5 – ICTE–36, MPTE–5 – MPTE–45)  
Mosorb and Surmetic are trademarks of Semiconductor Components Industries, LLC.  
ON Semiconductor and  
are registered trademarks of Semiconductor Components Industries, LLC (SCILLC). SCILLC reserves the right to make  
changes without further notice to any products herein. SCILLC makes no warranty, representation or guarantee regarding the suitability of its products for any  
particular purpose, nor does SCILLC assume any liability arising out of the application or use of any product or circuit, and specifically disclaims any and all  
liability, including without limitation special, consequential or incidental damages. “Typical” parameters which may be provided in SCILLC data sheets and/or  
specifications can and do vary in different applications and actual performance may vary over time. All operating parameters, including “Typicals” must be  
validated for each customer application by customer’s technical experts. SCILLC does not convey any license under its patent rights nor the rights of others.  
SCILLC products are not designed, intended, or authorized for use as components in systems intended for surgical implant into the body, or other applications  
intended to support or sustain life, or for any other application in which the failure of the SCILLC product could create a situation where personal injury or death  
may occur. Should Buyer purchase or use SCILLC products for any such unintended or unauthorized application, Buyer shall indemnify and hold SCILLC  
and its officers, employees, subsidiaries, affiliates, and distributors harmless against all claims, costs, damages, and expenses, and reasonable attorney fees  
arising out of, directly or indirectly, any claim of personal injury or death associated with such unintended or unauthorized use, even if such claim alleges that  
SCILLC was negligent regarding the design or manufacture of the part. SCILLC is an Equal Opportunity/Affirmative Action Employer.  
PUBLICATION ORDERING INFORMATION  
Literature Fulfillment:  
JAPAN: ON Semiconductor, Japan Customer Focus Center  
4–32–1 Nishi–Gotanda, Shinagawa–ku, Tokyo, Japan 141–0031  
Phone: 81–3–5740–2700  
Literature Distribution Center for ON Semiconductor  
P.O. Box 5163, Denver, Colorado 80217 USA  
Phone: 303–675–2175 or 800–344–3860 Toll Free USA/Canada  
Fax: 303–675–2176 or 800–344–3867 Toll Free USA/Canada  
Email: ONlit@hibbertco.com  
Email: r14525@onsemi.com  
ON Semiconductor Website: http://onsemi.com  
For additional information, please contact your local  
Sales Representative.  
N. American Technical Support: 800–282–9855 Toll Free USA/Canada  
1N6373/D  

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